Low temperature reliability and high sensitivity of dual-channel up-conversion thermometry phosphor optimized by heterovalent ions
暂无分享,去创建一个
Xusheng Wang | Yanxia Li | Rui Hu | Yan Zhao
[1] Hongwei Song,et al. Color-tunable emission and non-contact optical temperature sensing performance in NaY9Si6O26: Ce3+, Eu3+ phosphors , 2021 .
[2] Xiaoliang Yang,et al. Far-red-emitting Li6SrLa2Sb2O12: Mn4+ phosphor for plant growth LEDs application , 2021 .
[3] X. Yao,et al. Improved temperature sensing performance based on Stark sublevels of Er3+/Yb3+ co-doped tungstate-molybdate up-conversion phosphors , 2020 .
[4] E. Pun,et al. Temperature sensitivity based on Er3+ fluorescence fluctuation in Gd2Ti2O7: Er3+-Yb3+ porous nanofibers , 2020 .
[5] V. K. Rai,et al. Optical thermometry using Stark sublevels in charge compensated transition metal molybdate upconverting phosphors , 2020 .
[6] Miaomiao Zhu,et al. Luminescence and temperature sensing abilities of zincate phosphors co-doped bismuth Bi3+ and lanthanide Eu3+/Sm3+ , 2020 .
[7] Xiaojun Wang,et al. Deep-Tissue Temperature Sensing Realized in BaY2O4:Yb3+/Er3+ with Ultrahigh Sensitivity and Extremely Intense Red Upconversion Luminescence. , 2020, Inorganic chemistry.
[8] A. Abalymov,et al. Visible and NIR Upconverting Er3+–Yb3+ Luminescent Nanorattles and Other Hybrid PMO‐Inorganic Structures for In Vivo Nanothermometry , 2020, Advanced Functional Materials.
[9] Tianchun Lang,et al. A novel efficient single-phase dual-emission phosphor with high resemblance to the photosynthetic spectrum of chlorophyll A and B , 2020 .
[10] S. Stefanovich,et al. Tunable luminescence and energy transfer in Eu3+ doped Ca8MTb(PO4)7 (M = Mg, Zn, Ca) phosphors , 2020 .
[11] X. Yao,et al. Winning wide-temperature-range and high-sensitive thermometry by a multichannel strategy of dual-lanthanides in the new tungstate phosphors , 2020 .
[12] Minghui Yang,et al. Highly selective and sensitive xylene sensors based on Nb-doped NiO nanosheets , 2020 .
[13] X. Yao,et al. Optical temperature sensing of up-conversion luminescent materials: Fundamentals and progress , 2020 .
[14] Jun Lin,et al. Ultra-broadband cyan-to-orange emitting Ba1+xSr1−xGa4O8:Bi3+ phosphors: luminescence control and optical temperature sensing , 2020 .
[15] M. Aguiló,et al. Short-wavelength infrared self-assessed photothermal agents based on Ho,Tm:KLu(WO4)2 nanocrystals operating in the third biological window (1.45–1.96 μm wavelength range) , 2020 .
[16] Xiuli Wang,et al. The enhanced photoluminescence and temperature sensing performance in rare earth doped SrMoO4 phosphors by aliovalent doping: from material design to device applications , 2019, Journal of Materials Chemistry C.
[17] Qiwei Zhang,et al. Thermal Enhancing of Upconversion by Negative Lattice Expansion in Orthorhombic Yb2W3O12. , 2019, Angewandte Chemie.
[18] S. H. Park,et al. Infrared excited Er3+/Yb3+ codoped NaLaMgWO6 phosphors with intense green up-conversion luminescence and excellent temperature sensing performance. , 2019, Dalton transactions.
[19] Shilong Zhao,et al. Dependence of upconversion emission and optical temperature sensing behavior on excitation power in Er3+/Yb3+ co-doped BaMoO4 phosphors , 2019, Journal of Luminescence.
[20] A. Bahadur,et al. Enhanced upconversion and downshifting emissions from Tm3+, Yb3+ co-doped CaZrO3 phosphor in the presence of alkali ions (Li+, Na+ and K+) , 2019, Journal of Alloys and Compounds.
[21] L. Pei,et al. Enhanced up-conversion luminescence and optical temperature sensing in graphitic C3N4 quantum dots grafted with BaWO4:Yb3+,Er3+ phosphors , 2019, Journal of Materials Chemistry C.
[22] Xihong Hao,et al. Achieving multicolor emission readout and tunable photoswitching via multiplexing of dual lanthanides in ferroelectric oxides , 2019, Journal of Materials Chemistry C.
[23] Jia Zhang,et al. Electronic structure, upconversion luminescence and optical temperature sensing behavior of Yb3+-Er3+/Ho3+ doped NaLaMgWO6 , 2019, Journal of Alloys and Compounds.
[24] M. Mahata,et al. Enhancing the upconversion luminescence properties of Er3+–Yb3+ doped yttrium molybdate through Mg2+ incorporation: effect of laser excitation power on temperature sensing and heat generation , 2019, New Journal of Chemistry.
[25] W. Cao,et al. Enhanced NIR-NIR luminescence from CaWO4: Nd3+/Yb3+ phosphors by Li+ codoping for thermometry and optical heating , 2019, Journal of Luminescence.
[26] B. Richards,et al. Facile synthesis of mono-disperse sub-20 nm NaY(WO4)2:Er3+,Yb3+ upconversion nanoparticles: a new choice for nanothermometry , 2019, Journal of Materials Chemistry C.
[27] Honglie Shen,et al. Effect of Li co-doping with Er on up-conversion luminescence property and its temperature dependence of NaY(WO4)2 , 2019, Journal of Physics and Chemistry of Solids.
[28] A. Mahmoud,et al. Electrical and electrochemical properties of Li2M(WO4)2 (M = Ni, Co and Cu) compounds , 2019, RSC advances.
[29] M. Kaczmarek,et al. Er3+-to-Yb3+ and Pr3+-to-Yb3+ energy transfer for highly efficient near-infrared cryogenic optical temperature sensing. , 2019, Nanoscale.
[30] T. Pang,et al. Calibration of optical temperature sensing of Ca1-xNaxMoO4:Yb3+,Er3+ with intense green up-conversion luminescence , 2019, Journal of Alloys and Compounds.
[31] S. Rai,et al. Enhanced photoluminescence in Tm3+, Yb3+, Mg2+ tri-doped ZnWO4 phosphor: Three photon upconversion, laser induced optical heating and temperature sensing , 2018, Sensors and Actuators B: Chemical.
[32] Amit Kumar Srivastava,et al. Structural and photoluminescence properties of thermally stable Eu3+activated CaWO4 nanophosphor via Li+ incorporation , 2018, Journal of Luminescence.
[33] Yan Wang,et al. Infrared‐Sensitive Memory Based on Direct‐Grown MoS2–Upconversion‐Nanoparticle Heterostructure , 2018, Advanced materials.
[34] A. Singh,et al. Effect of Li+ on frequency upconversion and intrinsic optical bistability of Ho3+/Yb3+ co-doped gadolinium tungstate phosphor , 2018, Journal of Physics and Chemistry of Solids.
[35] Jia Zhang,et al. Upconversion Luminescence and Discussion of Sensitivity Improvement for Optical Temperature Sensing Application. , 2018, Inorganic chemistry.
[36] Xiaoxue Wang,et al. Tune color of single-phase LiGd(MoO 4 ) 2-X (WO 4 ) X : Sm 3+ , Tb 3+ via adjusting the proportion of matrix and energy transfer to create white-light phosphor , 2018 .
[37] Z. Fu,et al. Investigation on Two Forms of Temperature-Sensing Parameters for Fluorescence Intensity Ratio Thermometry Based on Thermal Coupled Theory. , 2018, Inorganic chemistry.
[38] S. Gupta,et al. Deciphering the Role of Charge Compensator in Optical Properties of SrWO4:Eu3+:A (A = Li+, Na+, K+): Spectroscopic Insight Using Photoluminescence, Positron Annihilation, and X-ray Absorption. , 2018, Inorganic chemistry.
[39] V. K. Rai,et al. Influence of silica surface coating on optical properties of Er3+-Yb3+:YMoO4 upconverting nanoparticles , 2017 .
[40] Xiaojun Wang,et al. Temperature sensing and bio-imaging applications based on polyethylenimine/CaF2 nanoparticles with upconversion fluorescence. , 2017, Talanta.
[41] K. Nanda,et al. Red emitting Eu:ZnO nanorods for highly sensitive fluorescence intensity ratio based optical thermometry , 2017 .
[42] Xiaojun Wang,et al. Investigation into optical heating and applicability of the thermal sensor bifunctional properties of Yb3+ sensitized Tm3+ doped Y2O3, YAG and LaAlO3 phosphors , 2016 .
[43] A. Kaczmarek,et al. Upconversion luminescence of lanthanide-doped mixed CaMoO4-CaWO4 micro-/nano-materials. , 2016, Dalton transactions.
[44] Xinlong Ma,et al. The dual-model up/down-conversion green luminescence of Gd6O5F8:Yb3+,Ho3+,Li+ and its application for temperature sensing , 2016 .
[45] B. Choi,et al. Luminescent properties and energy transfer of Sm3+ doped Sr2CaMo1-xWxO6 as a potential phosphor for white LEDs , 2016 .
[46] Chongfeng Guo,et al. Broad-Scope Thermometry Based on Dual-Color Modulation up-Conversion Phosphor Ba5Gd8Zn4O21:Er3+/Yb3+ , 2016 .
[47] Yanmin Yang,et al. Optical Temperature Sensing Behavior of High‐Efficiency Upconversion: Er3+–Yb3+ Co‐Doped NaY(MoO4)2 Phosphor , 2015 .
[48] Yi Du,et al. Heterovalent‐Doping‐Enabled Efficient Dopant Luminescence and Controllable Electronic Impurity Via a New Strategy of Preparing II−VI Nanocrystals , 2015, Advanced materials.
[49] Vijay Kumar,et al. Upconversion based temperature sensing ability of Er3+–Yb3+codoped SrWO4: An optical heating phosphor , 2015 .
[50] S. Singh,et al. Enhanced up-conversion and temperature-sensing behaviour of Er(3+) and Yb(3+) co-doped Y2Ti2O7 by incorporation of Li(+) ions. , 2014, Physical chemistry chemical physics : PCCP.
[51] Daqin Chen,et al. Impurity doping: a novel strategy for controllable synthesis of functional lanthanide nanomaterials. , 2013, Nanoscale.
[52] H. Seo,et al. Structure and Luminescence of New Red‐Emitting Materials‐Eu3+‐Doped Triple Orthovanadates NaALa(VO4)2 (A = Ca, Sr, Ba) , 2013 .
[53] Xiaojing Wang,et al. Particle Size and Structural Control of ZnWO4 Nanocrystals via Sn2+ Doping for Tunable Optical and Visible Photocatalytic Properties , 2012 .